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Control of false positive rates in clusterwise fMRI inferences

机译:控制群体向量FMRI推断中的假阳性率

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Random field theory (RFT) provided a theoretical foundation for cluster-extent-based thresholding, the most widely used method for multiple comparison correction of statistical maps in neuroimaging research. However, several studies questioned the validity of the standard clusterwise inference in fMRI analyses and observed inflated false positive rates. In particular, Eklund et al. [Cluster failure: Why fMRI inferences for spatial extent have inflated false-positive rates, Proc. Natl. Acad. Sci. 113 (2016), pp. 7900-7905. Available at ] used resting-state fMRI as null data and found false positive rates of up to , which immediately led to many discussions. In this study, we summarize the assumptions in RFT clusterwise inference and propose new parametric ways to approximate the distribution of the cluster size by properly combining the limiting distribution of the cluster size given by Nosko [Local structure of Gaussian random fields in the vicinity of high-level shines, Sov. Math. Dokl. 10 (1969), pp. 1481-1484] and the expected value of the cluster size provided by Friston et al. [Assessing the significance of focal activations using their spatial extent, Hum. Brain Mapp. 1 (1994), pp. 210-220. Available at ]. We evaluated our proposed method using four different classic simulation settings in published papers. Results show that our method produces a more stringent estimation of cluster extent size, which leads to a better control of false positive rates.
机译:随机场理论(RFT)为基于簇数的阈值化提供了理论基础,这是多重比较校正神经影像研究中的多种比较校正的方法。然而,几项研究质疑FMRI分析中标准集群化推断的有效性,并观察到膨胀的假阳性率。特别是Eklund等人。 [集群失败:为什么空间范围的FMRI推广夸大了假阳性率,proc。 natl。阿卡。 SCI。 113(2016),第7900-7905页。可用AT]使用休息状态FMRI作为NULL数据,发现最多的错误阳性率,立即导致了许多讨论。在这项研究中,我们总结了RFT ClusterWise推断中的假设,并提出了通过正确组合NoSko [Highity的高斯随机字段本地结构的群集大小的限制分布来近似于近似群集大小的分布。 -level闪耀,sov。数学。 dokl。图10(1969),第1481-1484页,第1481-1484页,弗里斯顿等人提供的簇大小的预期价值。 [评估局灶性激活的重要性,使用它们的空间程度嗡嗡声。脑mapp。 1(1994),PP。210-220。可用。我们评估了我们在发布论文中使用四种不同的经典仿真设置的提出方法。结果表明,我们的方法会产生更严格的集群范围估计,这导致更好地控制错误阳性率。

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